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P-T path development derived from shearband boudin microstructure
Institution:1. ICT – Instituto de Ciências da Terra, Pólo da Universidade do Minho, Campus de Gualtar, 4710-057 Braga, Portugal;2. Tectonophysics, Institute of Geoscience, University of Mainz, 55128 Mainz, Germany;3. ICT - Instituto de Ciências da Terra, Pólo da Universidade do Porto / Departamento de Geociências, Ambiente e Ordenamento do Território, Faculdade de Ciências da Universidade do Porto, Rua do Campo Alegre, 687, 4169-007 Porto, Portugal;4. School of Earth, Atmosphere and Environment, Monash University, 3800 Clayton, VIC, Australia;1. School of Earth, Atmosphere and Environment, Monash University, Clayton, VIC, 3800, Australia;2. Instituto Geonorte, National University of Salta, INENCO-CONICET, Av. Bolivia 5150, 4400, Salta, Argentina;3. Centre for Lithospheric Research, Czech Geological Survey, Klárov 3, 118 21, Prague 1, Czech Republic;1. ChronoEnvironnement, UMR 6249, Université de Franche Comté, 16 route de Gray, 25030 Besançon, France;2. Géosciences Montpellier, UMR 5243, Université Montpellier 2, 34095 Montpellier, France;3. DNO International ASA, Bryggegata 9, 0250 Oslo, Norway;4. Total, Jean Feger Scientific and Technical Center, Avenue Larribau, 64018 Pau, France;1. Department of Geology, Southern Illinois University, Carbondale, IL 62901-4324, USA;2. Department of Geosciences, National Taiwan University, Taipei 106, Taipei, Taiwan, ROC;3. Department of Earth Sciences, National Taiwan Normal University, Wenshan District, Taipei, Taiwan, ROC;4. School of Earth & Environment, University of Leeds, Leeds, UK;5. Department of Geosciences, University of Texas at Dallas, Richardson, TX 75080-3021, USA;1. Institut für Geowissenschaften, Universität Frankfurt a.M., Altenhöferallee 1, D-60438, Frankfurt a.M., Germany;2. Institut für Neuroradiologie, Universität Frankfurt a.M., Theodor-Stern-Kai 7, 60596, Frankfurt a.M., Germany
Abstract:This work focuses on the development of a regional P-T-path from the Malpica-Lamego Ductile Shear Zone, NW Portugal, based on the microstructures of shearband boudins evolved during progressive simple shear. The combination of microstructural analysis, fluid inclusion studies, crystallographic preffered orientation and fractal geometry analyses, allows to link several stages in the internal evolution of the boudin to regional P-T conditions. The boudinage process is initiated under differential stress after the original layer achieved sufficient viscosity contrast relative to the surrounding matrix. Two main transformations occur simultaneously: i) change in the external shape with continuous evolution from tabular rigid body to sigmoidal asymmetric morphology (shearband boudin) and ii) localized dynamic recrystallization in the sharp-tips of the structure (acute edge of shearband boudin), and along the boudin's margin and grain boundaries. Smaller recrystallized grains, particularly in the sharp-tip domains, accommodate most of the external strain, and larger relict grains are preserved in the centre. Dynamic recrystallization under constant strain rates and strain partitioning inside the boudins is indicated by fractal geometry based on grain boundary and grain area analysis. Progressive deformation leads to the generation of structural and textural heterogeneous domains inside the boudins, and is recorded by quartz c-axis orientation analysis and fluid inclusion studies. The last deformation episode shows the final formation of the blunt-tip domain and internal secondary shear planes. The regional P-T path begins with the crystallization of andalusite after an internal shearband boudin dilation event and ends with quartz dynamic recrystallization on boudin tips. The main deformation stage (310/315 Ma) led to reactivation of internal secondary shear zones with sillimanite crystallization.
Keywords:P-T-path  Shearband boudin  Quartz microstructure  Quartz CPO – Fabric Analyser  Fractal geometry  PTVX fluid inclusion
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